Proteolytic Activity of DegP Is Required for the Burkholderia Symbiont To Persist in Its Host Bean Bug
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J. Kim | H. Jang | Junbeom Lee | Ha Ram Bae | B. Jeong
[1] L. Kay,et al. Competing stress-dependent oligomerization pathways regulate self-assembly of the periplasmic protease-chaperone DegP , 2021, Proceedings of the National Academy of Sciences.
[2] V. Silveira,et al. DegP protease is essential for tolerance to salt stress in the plant growth-promoting bacterium Gluconacetobacter diazotrophicus PAL5. , 2020, Microbiological research.
[3] Y. Kikuchi,et al. Burkholderia insecticola triggers midgut closure in the bean bug Riptortus pedestris to prevent secondary bacterial infections of midgut crypts , 2020, The ISME Journal.
[4] Frederic D. Schramm,et al. Protein aggregation in bacteria , 2019, FEMS microbiology reviews.
[5] Y. Kikuchi,et al. Unforeseen swimming and gliding mode of an insect gut symbiont, Burkholderia sp. RPE64, with wrapping of the flagella around its cell body , 2018, The ISME Journal.
[6] Y. Kikuchi,et al. Unforeseen swimming and gliding mode of an insect gut symbiont, Burkholderia sp. RPE64, with wrapping of the flagella around its cell body , 2017, The ISME Journal.
[7] L. Sturiale,et al. The lipopolysaccharide core oligosaccharide of Burkholderia plays a critical role in maintaining a proper gut symbiosis with the bean bug Riptortus pedestris , 2017, The Journal of Biological Chemistry.
[8] T. Fukatsu,et al. Gut symbiotic bacteria stimulate insect growth and egg production by modulating hexamerin and vitellogenin gene expression , 2017, Developmental and comparative immunology.
[9] T. Fukatsu,et al. Understanding regulation of the host-mediated gut symbiont population and the symbiont-mediated host immunity in the Riptortus-Burkholderia symbiosis system. , 2016, Developmental and comparative immunology.
[10] Z. Chang. The function of the DegP (HtrA) protein: Protease versus chaperone , 2016, IUBMB life.
[11] B. Lee,et al. The symbiotic role of O-antigen of Burkholderia symbiont in association with host Riptortus pedestris. , 2016, Developmental and comparative immunology.
[12] Jin-Wook Yoo,et al. Burkholderia gut symbionts enhance the innate immunity of host Riptortus pedestris. , 2015, Developmental and comparative immunology.
[13] Y. Kikuchi,et al. Bacterial cell motility ofBurkholderia gut symbiont is required to colonize the insect gut , 2015, FEBS letters.
[14] Xin Sheng Zhao,et al. Periplasmic quality control in biogenesis of outer membrane proteins. , 2015, Biochemical Society transactions.
[15] B. Lee,et al. Symbiotic factors in Burkholderia essential for establishing an association with the bean bug, Riptortus pedestris. , 2015, Archives of insect biochemistry and physiology.
[16] Joon-Hee Lee,et al. Purine Biosynthesis, Biofilm Formation, and Persistence of an Insect-Microbe Gut Symbiosis , 2014, Applied and Environmental Microbiology.
[17] J. Mekalanos,et al. Proteomic analysis of Vibrio cholerae outer membrane vesicles , 2014, Proceedings of the National Academy of Sciences.
[18] Xinmiao Fu,et al. DegP primarily functions as a protease for the biogenesis of β‐barrel outer membrane proteins in the Gram‐negative bacterium Escherichia coli , 2014, The FEBS journal.
[19] T. Fukatsu,et al. Live imaging of symbiosis: spatiotemporal infection dynamics of a GFP-labelled Burkholderia symbiont in the bean bug Riptortus pedestris , 2013, Molecular ecology.
[20] T. Fukatsu,et al. Purine biosynthesis-deficient Burkholderia mutants are incapable of symbiotic accommodation in the stinkbug , 2013, The ISME Journal.
[21] Y. Rhee,et al. Polyester synthesis genes associated with stress resistance are involved in an insect–bacterium symbiosis , 2013, Proceedings of the National Academy of Sciences.
[22] Ho Jin Lee,et al. Bacterial Cell Wall Synthesis Gene uppP Is Required for Burkholderia Colonization of the Stinkbug Gut , 2013, Applied and Environmental Microbiology.
[23] I. Yumoto,et al. Efficient Colonization of the Bean Bug Riptortus pedestris by an Environmentally Transmitted Burkholderia Symbiont , 2013, Applied and Environmental Microbiology.
[24] H. Ingmer,et al. Bacterial proteases and virulence. , 2013, Sub-cellular biochemistry.
[25] J. Goldberg,et al. Proteolytic regulation of alginate overproduction in Pseudomonas aeruginosa , 2012, Molecular microbiology.
[26] T. Fukatsu,et al. Symbiont-mediated insecticide resistance , 2012, Proceedings of the National Academy of Sciences.
[27] G. Schneider,et al. Distinct Roles of Secreted HtrA Proteases from Gram-negative Pathogens in Cleaving the Junctional Protein and Tumor Suppressor E-cadherin* , 2012, The Journal of Biological Chemistry.
[28] S. Shibata,et al. Sensor Kinase RscS Induces the Production of Antigenically Distinct Outer Membrane Vesicles That Depend on the Symbiosis Polysaccharide Locus in Vibrio fischeri , 2011, Journal of bacteriology.
[29] S. Colella,et al. A Genomic Reappraisal of Symbiotic Function in the Aphid/Buchnera Symbiosis: Reduced Transporter Sets and Variable Membrane Organisations , 2011, PloS one.
[30] T. Fukatsu,et al. Specific Developmental Window for Establishment of an Insect-Microbe Gut Symbiosis , 2011, Applied and Environmental Microbiology.
[31] R. Huber,et al. HTRA proteases: regulated proteolysis in protein quality control , 2011, Nature Reviews Molecular Cell Biology.
[32] T. Fukatsu,et al. An ancient but promiscuous host–symbiont association between Burkholderia gut symbionts and their heteropteran hosts , 2011, The ISME Journal.
[33] H. Flemming,et al. The biofilm matrix , 2010, Nature Reviews Microbiology.
[34] Thomas Bjarnsholt,et al. Biofilms in chronic infections - a matter of opportunity - monospecies biofilms in multispecies infections. , 2010, FEMS immunology and medical microbiology.
[35] H. Uchiyama,et al. Outer Membrane Machinery and Alginate Synthesis Regulators Control Membrane Vesicle Production in Pseudomonas aeruginosa , 2009, Journal of bacteriology.
[36] H. Hodak,et al. Role of DegP for two‐partner secretion in Bordetella , 2009, Molecular microbiology.
[37] Jack Iwanczyk,et al. Characterization of the Autocleavage Process of the Escherichia coli HtrA Protein: Implications for its Physiological Role , 2008, Journal of bacteriology.
[38] E. Ruby. Symbiotic conversations are revealed under genetic interrogation , 2008, Nature Reviews Microbiology.
[39] Z. Zhou,et al. Activation of DegP chaperone-protease via formation of large cage-like oligomers upon binding to substrate proteins , 2008, Proceedings of the National Academy of Sciences.
[40] H. Saibil,et al. Structural basis for the regulated protease and chaperone function of DegP , 2008, Nature.
[41] Daniel Kahne,et al. Defining the roles of the periplasmic chaperones SurA, Skp, and DegP in Escherichia coli. , 2007, Genes & development.
[42] T. Fukatsu,et al. Insect-Microbe Mutualism without Vertical Transmission: a Stinkbug Acquires a Beneficial Gut Symbiont from the Environment Every Generation , 2007, Applied and Environmental Microbiology.
[43] M. Valvano,et al. Burkholderia cenocepacia Requires a Periplasmic HtrA Protease for Growth under Thermal and Osmotic Stress and for Survival In Vivo , 2007, Infection and Immunity.
[44] M. Kuehn,et al. Release of outer membrane vesicles by Gram-negative bacteria is a novel envelope stress response , 2007, Molecular microbiology.
[45] N. Moran,et al. Molecular Interactions between Bacterial Symbionts and Their Hosts , 2006, Cell.
[46] Kevin F. Jones,et al. Listeria monocytogenes 10403S HtrA Is Necessary for Resistance to Cellular Stress and Virulence , 2006, Infection and Immunity.
[47] I. Biswas,et al. Role of HtrA in Surface Protein Expression and Biofilm Formation by Streptococcus mutans , 2005, Infection and Immunity.
[48] T. Fukatsu,et al. Gut Symbiotic Bacteria of the Genus Burkholderia in the Broad-Headed Bugs Riptortus clavatus and Leptocorisa chinensis (Heteroptera: Alydidae) , 2005, Applied and Environmental Microbiology.
[49] M. Caparon,et al. Role for Serine Protease HtrA (DegP) of Streptococcus pyogenes in the Biogenesis of Virulence Factors SpeB and the Hemolysin Streptolysin S , 2004, Infection and Immunity.
[50] M. Parsek,et al. Bacterial biofilms: an emerging link to disease pathogenesis. , 2003, Annual review of microbiology.
[51] R. Misra,et al. Protease-Deficient DegP Suppresses Lethal Effects of a Mutant OmpC Protein by Its Capture , 2003, Journal of bacteriology.
[52] C. Southan,et al. The HtrA family of proteases: implications for protein composition and cell fate. , 2002, Molecular cell.
[53] Robert Huber,et al. Crystal structure of DegP (HtrA) reveals a new protease-chaperone machine , 2002, Nature.
[54] R. Misra,et al. Overexpression of Protease-Deficient DegPS210ARescues the Lethal Phenotype of Escherichia coli OmpF Assembly Mutants in a degP Background , 2000, Journal of bacteriology.
[55] M. Wozniak,et al. The Escherichia coli heat shock protease HtrA participates in defense against oxidative stress , 1999, Molecular and General Genetics MGG.
[56] A. Steinbüchel,et al. Biochemical and genetic analysis of PHA synthases and other proteins required for PHA synthesis. , 1999, International journal of biological macromolecules.
[57] M. Ehrmann,et al. A Temperature-Dependent Switch from Chaperone to Protease in a Widely Conserved Heat Shock Protein , 1999, Cell.
[58] H. Hennecke,et al. Identification of the Bradyrhizobium japonicum degP gene as part of an operon containing small heat-shock protein genes , 1998, Archives of Microbiology.
[59] S. Gottesman,et al. Protein quality control: triage by chaperones and proteases. , 1997, Genes & development.
[60] J. Glazebrook,et al. Genetic analysis of Rhizobium meliloti bacA-phoA fusion results in identification of degP: two loci required for symbiosis are closely linked to degP , 1996, Journal of bacteriology.
[61] C. Georgopoulos,et al. The HtrA (DegP) protein, essential for Escherichia coli survival at high temperatures, is an endopeptidase , 1990, Journal of bacteriology.